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Updated: Jan 14, 2026

Asthma Detection Research Based on Voice Signal Processing and Machine Learning
Published on: July 22, 2025
Generative physics-informed machine learning for modeling indoor air quality and its impact on student health and
Adekunle Dosumu1, Seyed Hamed Godasiaei2, Obuks A Ejohwomu3
1School of Science and Technology, Clifton Lane, Nottingham Trent University, Nottingham, NG11 8NS, United Kingdom.
None:
This study presents a novel hybrid framework combining experimental testing, statistical analysis, physics-based modeling, and interpretable machine learning (ML) to assess indoor air quality (IAQ) and its impact on student health and academic performance in healthcare and laboratory environments. A comparative feature importance analysis using Spearman, Kendall methods, and SHAP values identified particulate matter (PM10) as the most critical pollutant, with location, noise, and thermal factors playing secondary roles. Empirical assessments revealed concerning IAQ variations-Lab 187E (Biological Prep) exhibited elevated PM2.5 (12.4 μg/m3), while Lab 290D (Chemical Storage) showed high TVOC (312 ppb) and Virus Index (3). At Bilborough Medical Centre, CO2 peaked at 2819 ppm (exceeding NHS limits), and TVOC reached 2618 ppb, highlighting ventilation deficiencies. The PDE-XGBoost model outperformed PDE-RF (MAE: 0.4548 vs. 0.6652; R2: 0.989 vs. 0.976), demonstrating superior predictive accuracy for IAQ parameters. Partial Dependence Plots (PDPs) revealed TVOC and noise as dominant linear predictors of PM2.5, while temperature exhibited a nonlinear effect. SHAP analysis underscored PM10 direct physiological impact and location's indirect role in pollutant dispersion. The integration of statistical and ML methods provided actionable insights: PM10 mitigation, spatial optimization, and VOC control are critical for healthier environments.
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